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2-Fluoro-4-Methylpyridine

    • Product Name 2-Fluoro-4-Methylpyridine
    • Alias 2-Fluoro-4-picoline
    • Einecs 823-900-3
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    413230

    Chemical Name 2-Fluoro-4-Methylpyridine
    Cas Number 55702-27-1
    Molecular Formula C6H6FN
    Molecular Weight 111.12 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 143-145°C
    Melting Point -38°C
    Density 1.079 g/mL at 25°C
    Refractive Index 1.491
    Flash Point 46°C
    Solubility Slightly soluble in water; soluble in organic solvents
    Synonyms 4-Methyl-2-fluoropyridine
    Smiles Cc1ccnc(F)c1
    Inchi InChI=1S/C6H6FN/c1-5-2-3-8-6(7)4-5/h2-4H,1H3
    Purity Typically ≥98%

    As an accredited 2-Fluoro-4-Methylpyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 100 mL, with tamper-evident cap and hazard labels, securely sealed to protect from light and moisture.
    Shipping 2-Fluoro-4-Methylpyridine is shipped in tightly sealed containers, typically under inert atmosphere or nitrogen to prevent moisture and contamination. The chemical is classified as hazardous; therefore, it is packaged according to international and local regulations. Proper labeling, documentation, and transport guidelines are strictly followed to ensure safe delivery.
    Storage 2-Fluoro-4-Methylpyridine should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers and acids. Protect from moisture and direct sunlight. Use secondary containment if possible. Ensure proper labeling and keep away from food, drinks, and animal feed.
    Application of 2-Fluoro-4-Methylpyridine

    Applications of 2-Fluoro-4-Methylpyridine in Industrial Manufacturing

    2-Fluoro-4-Methylpyridine is a specialty intermediate widely used in pharmaceutical, agrochemical, and fine chemical production. As a direct manufacturer, we supply high-purity material to various regulated downstream sectors where consistent quality and process traceability are paramount.

    1. Pharmaceutical Active Ingredient Synthesis

    In pharmaceutical manufacturing, this pyridine derivative acts as a regulated intermediate during the synthesis of select APIs, notably in the preparation of kinase inhibitors and anti-infective compounds. Its presence supports structure-activity optimization by facilitating the introduction of a fluorine atom to the pyridine ring at a defined stage. Our customers incorporate our material in medicinal chemistry steps recognized in regulatory filings. Process batches undergo validation runs prior to scale manufacturing.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • 21 CFR Part 210/211 cGMP (U.S. FDA)
    • EU GMP Part II for APIs
    • Compendial grade requirements per USP, EP where applicable

    Typical usage ratio

    • 0.2–1.5 molar equivalents in coupling, halogenation, and ring elaboration protocols; adjusted per target API route, impurity profile, and final dose strength

    Downstream process integration

    • Added post-core ring construction, prior to side-chain functionalization or N-alkylation
    • Reaction temperature commonly 60–125°C, solvent selection per Q3C residual limits
    • Pilot-plant crystallization or chromatographic purification after transformation
    • Controlled transfer to finishing stage or isolation area for downstream API formation

    Final product types

    • Small-molecule kinase inhibitors
    • Fluorinated anti-viral agents
    • Respiratory system drugs (where permitted)
    • Analytical reference standards

    2. Agrochemical Active Ingredient Precursor

    Producers in the agrochemical industry employ our intermediate for synthesizing selective fluorinated herbicides and insecticides. The pyridine core enables binding specificity for targeted biochemical pathways in crops or pests. Large-scale users blend the material in multi-step plant batch operations under strict stewardship to meet residue and traceability standards. Seasonal manufacturing requires batch reproducibility over multiple campaigns.

    Industry compliance standards

    • FAO/WHO JMPR: Guidelines for the Quality Control of Pesticides
    • ISO 9001:2015 Quality Management Systems for agrochemical production
    • Chemical Safety Assessment per EC Regulation No 1907/2006 (REACH)
    • Relevant product-specific Codex MRLs for active ingredient residues

    Typical usage ratio

    • 10–25% by mole in pre-final coupling and ring derivatization; altered based on downstream conversion rate, final product potency, and synthesis loss coefficients

    Downstream process integration

    • Used in core skeleton assembly, followed by fluorination or methylation steps
    • Integrated into pressure reactor charging with in-process monitoring
    • Formulation to technical grade active post-crystallization
    • Transferred to formulation plants for dispersible powders, suspension concentrates, or emulsifiable concentrate manufacture

    Final product types

    • Fluoropyridine-based herbicides (e.g., market products in rice or wheat protection)
    • Insecticidal active intermediates for vector control
    • Seed treatment actives for cereal and horticultural crops
    • Agrochemical analytical markers for field residue testing

    3. Custom Synthesis of Advanced Intermediates

    Contract manufacturers specializing in high-value intermediates use our product as a flexible scaffold for constructing fluorinated pyridine derivatives. The compound's structure allows regioselective functionalization, essential for developing molecular libraries in lead optimization projects. We enable strict analytical QC release on each batch, meeting collaboration partner specifications for structural purity and impurity fingerprinting.

    Industry compliance standards

    • ISO 9001:2015 certified custom chemical synthesis processes
    • Confidential disclosure and traceability as per contract partner NDA requirements
    • Hazardous substance management regulated under local chemical safety law (e.g., TSCA, REACH)
    • Analytical QC per customer-defined target purity/specifications

    Typical usage ratio

    • 0.5–1.0 molar equivalents, often as the limiting or protected starting unit in library or kilogram-scale syntheses; customized per project

    Downstream process integration

    • Initial charge into pilot glass reactors with inert atmosphere
    • Stepwise introduction of customized substituents via lithiation or cross-coupling reactions
    • Fractional collection and analytical validation at each intermediate purifying step
    • Packaging by campaign lot and tracked for cross-batch consistency

    Final product types

    • Molecular fragment libraries for pharmaceutical and agrochemical research
    • CRO-supplied reference intermediates for pipeline R&D validation
    • Building blocks for advanced polymeric and material science applications
    • Isotope-labeled standards for LC-MS or GC-MS analytical use

    4. Specialty Electronic Chemical Manufacturing

    Pyridine derivatives containing fluorine are increasingly used in the production of specialty electronic chemicals, particularly as intermediates in synthesizing photoresist components and advanced liquid crystal materials. Our material supports para-fluoro substitution, critical to the dielectric and solubility properties needed in advanced display technology manufacturing. We implement full raw material and batch traceability system per electronics industry audit requirements.

    Industry compliance standards

    • IECQ QC 080000:2017 Hazardous Substance Process Management
    • RoHS Directive 2011/65/EU for applicable input chemicals
    • UL 746A Polymeric Materials – Short Term Property Evaluations
    • Customer-driven JIS and ASTM specification benchmarks for electronics

    Typical usage ratio

    • 0.05–0.25 weight fraction in functional resin or oligomer synthesis; adjusted for substitution pattern and targeted optical properties

    Downstream process integration

    • Precursor feedstock in arylation or Suzuki coupling for monomer backbone; often the final substitution before polymerization
    • Blending into liquid crystal formulation batches
    • Subsequent purification via distillation or chromatography
    • Batch segregation to support traceable electronics quality documentation

    Final product types

    • Advanced photoresist agents for semiconductor lithography
    • High-performance liquid crystal display (LCD) compounds
    • Dielectric additive blends for thin-film transistor arrays
    • Photopolymer resins used in precision electronics
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    Certification & Compliance
    More Introduction

    2-Fluoro-4-Methylpyridine: Experience from the Factory Floor

    Our Perspective on a Versatile Building Block

    There is always a unique story behind each intermediate we craft, and 2-Fluoro-4-Methylpyridine tells one filled with teamwork, attention, and lessons learned over years in the lab and on the production line. From the days when requests for this compound trickled in from select pharmaceutical researchers, to now securing steady, repeat orders from agrochemical developers, we've seen firsthand just how much can depend on a reliable source for this highly specific heteroaromatic.

    Model and Specifications from a Producer’s View

    We manufacture 2-Fluoro-4-Methylpyridine strictly to achieve consistency both in chemical identity and downstream performance. Our batches routinely reach minimum purity levels exceeding 99 percent, determined by gas chromatography. Achieving such a benchmark isn’t the job of a single department—our synthesis crew adjusts reactant ratios and controls temperature ramps, while our analytical team refines detection limits on every round of quality checks. We've moved away from batch output that varies in hue or odor. The days of off-white powder or pungent, oily drips belong in our archives. Today, the final material appears as a clear to pale yellow liquid, with precise density and boiling points falling into a tight repeatable range, because close tolerances matter.

    Our technical files describe 2-Fluoro-4-Methylpyridine as C6H6FN, with a molecular weight of about 111.12 g/mol. But this formula only hints at the reality behind each kilogram we carefully pack into fluoropolymer-lined drums. Controls for trace water content and halogen ion contamination exist because our partners have made it clear: low impurities save steps in later syntheses. This keen attention to practical feedback forms the backbone of our own specification sheet, which matches or exceeds benchmarks set by leading global pharmacopeias, even if our buyers never mention pharmacopoeial compliance in their first RFQs.

    Usage Backed by Real-World Experience

    Almost every customer who brings up 2-Fluoro-4-Methylpyridine has a unique application, but we’ve identified broad themes. The molecule serves as more than a simple reagent; it often opens the pathway for key C-F bond installations in the active cores of complex molecules. Medicinal chemists require its stability when used as a starting structure or coupling partner during early bench-scale exploration of new drug scaffolds. The mild nucleophilicity of the methyl and the selective reactivity added by the fluorine allow development teams to make major leaps in synthetic routes.

    Getting feedback from synthesis teams at major pharmaceutical firms—some working on kinase inhibitors, others chasing new antibacterial scaffolds—reminds us of the diversity in usage. Some partners report turning to our lot of 2-Fluoro-4-Methylpyridine because substituent position directly impacts the biological profile of candidates. Agrochemical sector collaborators describe another angle: access to clean, stable 2-Fluoro-4-Methylpyridine often means faster progression through structure-activity relationship studies, where halogenated pyridines show improved metabolic profiles and field stability.

    Our scale-up teams have seen how a consistently pure batch directly reduces headaches in their hydrogenation, Suzuki cross-coupling, and amide-bond-forming reactions. They avoid unreactive, colored byproducts and dodge the threat of downstream decompositions—problems we've watched competitors face. Ultimately, clean conversion means fewer purification rounds and more time innovating, less time troubleshooting.

    Setting Ourselves Apart from Other Producers

    The 2-Fluoro-4-Methylpyridine market doesn't always appear crowded, but it isn’t empty. Experience has shown us that not all material supplied under this name behaves the same in a reaction flask. Inferior production methods, slack washing procedures, or poor control during distillation can leave buyers with material that foams, leaves a smelly residue, or drags unrelated peaks across a chromatogram. We’ve disassembled and retested outside samples after customers flagged sluggish kinetics or foul-smelling “pure” goods. In too many cases, unremoved starting material or high-boiling residues slipped through, masked by a high headline purity but never checked for trace sulfonates, chlorides, or water content. Such flaws quietly sabotage a research program or manufacturing run.

    Instead of touting only “purity” and “availability” in broad terms, we focus on trace impurity profiles and hand-validate key metrics like halide content, water, and UV-active contaminants. Largest buyers in specialty chemistry and regulated industries want assurance that every drum traces to a batch record stamped during our controlled, isolated process. We document reaction conditions, cooling rates, and even ambient humidity during distillations—not because any regulatory body forces us to, but because transparency keeps process optimization data and troubleshooting accurate for everyone involved.

    Our Processing Experience: What Matters Most

    Our production crews have upgraded ventilation, reactor linings, and solvent recovery setups to handle the quirks of 2-Fluoro-4-Methylpyridine. Fluorinated organics can corrode or etch common steel, so our vessels use anti-corrosive alloys and polymer coatings—an investment driven by experience, not simply code. Monitoring for small leaks, specific to this intermediate, remains routine on our line checks. Personally, I’ve stood with distillation operators as they adjust pressure and temperature curves with more care than the batch processers use for similar methylpyridines. Fluorinated species don’t always follow the same volatility rules, which demands extra vigilance on cut points during distillations.

    Waste minimization took years of iteration. The neat byproducts from our process allow for safer handling and easier offsite disposal. We built up solvent recovery units for both environmental compliance and cost sustainability, learning that good stewardship pays off through goodwill and a more robust supply chain for our clients. After a couple of minor solvent incidents early in our ramp-up phase, we reworked both the process documentation and the recall of residual solvent dangers, making sure new staff now undergo hands-on walk-throughs and seasonal refreshers.

    Connecting Specification to Application: Why Upstream Matters

    Our site chemists keep in frequent conversation with downstream users, application chemists, and their technical buyers. We work off real timelines that move from gram-scale pilot work to multi-ton production, adjusting lot size, package type and documentation as needed. Our focus on actives and problematic impurities stems from frank conversations with formulation teams who gave clear feedback on how off-spec intermediates cause their own process deviations. We adopted isotope-dilution mass spectrometry specifically because repeat buyers asked for assurance their chromatograms would come out as modeled—years before this technique became standard in specialty pyridine production.

    Comparisons to other analogues—say, 2-chloro-4-methylpyridine, or the unsubstituted 4-methylpyridine—tell us that minor changes impact more than just boiling point or UV cutoff. Placement of the fluorine atom at the two-position has shown differential behavior in metal-catalyzed couplings. Some labs have come to us mid-campaign, asking for analysis or blended intermediates when their initial attempts at reaction with non-fluorinated analogues failed to provide yields or selectivity. We respond by running stability and compatibility tests with customer-supplied catalysts, feeding real-time analytical data back through secure channels. That cycle of iterative improvement protects their campaign results—and our own reputation as a supplier who understands nuance, not just mass balance.

    Thoughts on Logistics and Packaging: Lessons Learned

    Early feedback revealed the practical headaches of poorly chosen containers. Users shared stories of leaky drums, vapor corrosion, or even solvent-extracted gaskets from prior suppliers. Our packaging now focuses on uniform fluoropolymer linings and chemical-resistant seals, eliminating this point of field failure. We track every package with QR-linked lot numbers and backstopped documentation, and each transfer comes with analysis notes from the same batch used for release testing. As raw material costs fluctuate, the reassurance of non-contaminating, leak-proof packaging can make the difference between productive lab days and frustrating, expensive downtime. Most technical buyers don’t care for packaging theory, but they do care when a process is threatened by impurities introduced during transit or storage.

    Scalability and Reliability: Keys for Our Partners

    Unlike boutique or research-only suppliers, we’ve put resources into scalable, process-controlled output based on batch demand. On occasions where customer campaigns demanded large volumes mid-year, our scale-up team juggled reactor capacity, utility loads, and environmental output, balancing the global need for reliability with the local impacts of plant operations. Our production team can manage everything from kilo-lab lots for early R&D to tonnage for full-scale manufacturing, and we work alongside regulators and project managers to keep lead times credible. It doesn’t come from magic, just honest planning, regular investment, and hard-won operational transparency.

    Feedback loops between our technical sales and production scheduling let us act quickly if a market shift sends volume surging, or if sudden logistical disruptions threaten upstream raw material pipelines. We don’t treat volume orders as “special” or secondary—they’re a core part of why we invest in continuous improvement of plant process control and employee training. Each campaign, whether for a multinational drug company or a specialized agrochemical startup, receives the same attention to detail and open channel for site visits and audits.

    Supporting Innovation Through Collaboration

    Our years producing 2-Fluoro-4-Methylpyridine taught us to focus keenly on information-sharing. We've made technical data, analytical methods, and process conditions available to trusted partners under non-disclosure frameworks. That willingness creates a foundation for safety, innovation, and process troubleshooting. We take pride when developers consult us for more than supply—as a technical sounding board or co-development ally. Occasionally, downstream teams return to us with new reaction data, highlighting edge-case impurities or stability quirks. We’re always ready to adjust our protocols, whether that means altering distillation points or refining storage advice.

    The most impactful advances often start with a trial batch that pinpoints a yield improvement, a cleaner intermediate, or a better-by-design work-up on the customer’s side. We act on such feedback with agility—dialing in new batch parameters, updating test limits, or running stability studies that simulate new shipping routes or storage regimens. That two-way improvement benefits everyone involved. Instead of recycling old spec sheets year after year, we stay up to date on the rapidly changing chemistry landscape, including new regulatory expectations, innovations in hazard mitigation, and shifts in market preference for greener, safer chemical handling.

    Honing Safety: Risk Management Built In, Not Bolted On

    Our approach to safety stems from hands-on incidents, not guidelines alone. The hazards of pyridine derivatives, especially those containing fluorine, aren’t theoretical. We’ve seen and learned from common missteps: unventilated labs, neglected PPE, unchecked spills. Our comprehensive safety program reflects experience gained through active risk reviews, routine scenario drills, and continuous employee education that goes far beyond cursory annual sessions. Each run begins with a pre-shift briefing, reviewing both chemical hazards and scenario responses, which we deliver for staff from production to loading bay.

    Beyond our own plant, we work with transport partners to review handling steps and prepare clear, multilingual dispatch guidance with every shipment. These protocols not only cut down on incidents but also build trust with customers’ EHS teams. Our record for site and transit safety means new collaborators can scale up orders confidently, knowing we care as much about shared safety as meeting tight deadlines.

    Environment and Compliance: Sustaining More Than Supply

    We approach compliance not as a checkbox but as a driver for sustainable process design. From air emission controls to solvent re-use, our plant upgrades come from field realities—like learning how even small leaks from storage tanks affect local air quality. We’ve adapted to stricter standards over the years, invested in containment and capture, and routinely exceed the minimum legal limits. This practice safeguards both our license to operate and our surrounding community’s well-being.

    Change isn’t always comfortable. Moving equipment, rewriting SOPs, or investing in online emission monitoring requires time and resources. We’ve learned, though, that these efforts keep our process robust in the face of shifting regulations and evolving customer audit standards—giving us a stronger, more dependable position as a supplier willing to lead by example.

    Investing in People and Process

    Behind every drum of 2-Fluoro-4-Methylpyridine lies the expertise of our chemical operators, maintenance techs, and quality assurance staff. Years of internal knowledge-sharing have built up a team ready to intervene on challenges before they reach the finished product. We mentor new staff not just on procedures, but on understanding root causes and recognizing the subtle cues that predict a batch might require extra scrutiny. This culture of vigilance supports a low-defect, high-reliability process, where issues get flagged early and resolved swiftly, not papered over or sent downstream.

    We support ongoing education and technical curiosity, sending staff to industry events, collaborative forums, and specialist workshops. This practice keeps us current on new production technologies, advances in analytical validation, and international best practices relevant to 2-Fluoro-4-Methylpyridine.

    Looking Forward: The Future of 2-Fluoro-4-Methylpyridine

    As innovation in pharmaceuticals and agrochemicals accelerates, the role of intermediates like 2-Fluoro-4-Methylpyridine expands. Demand for high-purity, well-documented material keeps rising, and we remain committed to fielding not only a product, but truly useful guidance about how and when to deploy it effectively. Continuous improvement means staying alert to new data, including emerging insights into compound-specific hazards and performance.

    We plan to continue collaborating closely with chemists, engineers, and procurement specialists, refining both our process and product with each field report and each analytical detail. Serving as a direct manufacturer means owning both the successes and the surprises—sharing lessons learned instead of standing behind a faceless datasheet.

    The unique combination of fluorine placement and methyl substitution in this molecule opens doors for creative chemistry throughout the life science sector. We meet each new challenge with grounded knowledge, collaborative energy, and a deeply rooted commitment to safe, sustainable, and responsive chemical production.